Patentable/Patents/US-12699312-B2
US-12699312-B2

Image exposure device, image exposure method, and program

PublishedAugust 4, 2026
Assigneenot available in USPTO data we have
Technical Abstract

An image exposure device includes: an image display device that has a plurality of pixels and irradiates a photosensitive recording medium with light from the plurality of pixels; a support member that supports the photosensitive recording medium in a state in which an exposure surface of the photosensitive recording medium faces the image display device; a limiting member that is provided between the image display device and the support member and limits an angle of the light emitted from the image display device to the photosensitive recording medium; and a processor. The processor controls the image display device to display a display image generated by emphasizing only a dark portion among density differences of high-frequency components of an input image.

Patent Claims

Legal claims defining the scope of protection, as filed with the USPTO.

1

an image display device that has a plurality of pixels and irradiates a photosensitive recording medium with light from the plurality of pixels; a support member that supports the photosensitive recording medium in a state in which an exposure surface of the photosensitive recording medium faces the image display device; a limiting member that is provided between the image display device and the support member and limits an angle of the light emitted from the image display device to the photosensitive recording medium; and a processor, wherein the processor is configured to control the image display device to display a display image generated by emphasizing a dark portion among density differences of high-frequency components of an input image, and wherein in a case where a resolution (unit: ppi) of the image display device is D, the processor is configured to set a range for emphasizing the dark portion to a range according to a value M (unit: the number of pixels) obtained by a relational expression M=30/(2.54×1000/D). . An image exposure device comprising:

2

claim 1 the processor is configured to generate the display image by emphasizing a bright portion in addition to the dark portion among the density differences of the high-frequency components of the input image, and a degree of emphasis of the dark portion is higher than a degree of emphasis of the bright portion. . The image exposure device according to, wherein

3

claim 1 . The image exposure device according to, wherein the processor is configured to emphasize the density differences of the high-frequency components extracted from the input image by unsharp mask processing.

4

claim 1 . The image exposure device according to, wherein the processor is configured to set a standard deviation of a Gaussian filter to the value M or less, and extracts the high-frequency component by performing unsharp mask processing using the Gaussian filter from the input image.

5

claim 1 . The image exposure device according to, wherein the limiting member is an optical member of a diffusion optical system.

6

claim 5 . The image exposure device according to, wherein the optical member is a louver film in which first light transmission parts that transmit light and first light shielding parts that block light are alternately disposed in a first direction on a surface parallel to an arrangement surface where the pixels of the image display device are arranged, and second light transmission parts that transmit light and second light shielding parts that block light are alternately disposed in a second direction on the surface, the second direction being not parallel to the first direction.

7

claim 5 . The image exposure device according to, wherein the optical member is a louver film in which first light transmission parts that transmit light and first light shielding parts that block light are alternately disposed in a first direction on a surface parallel to an arrangement surface where the pixels of the image display device are arranged, and second light transmission parts that transmit light and second light shielding parts that block light are alternately disposed in a second direction on the surface, the second direction being perpendicular to the first direction.

8

claim 6 . The image exposure device according to, wherein the louver film is formed by laminating a first layer in which the first light transmission parts and the first light shielding parts are alternately disposed only in the first direction, and a second layer in which the second light transmission parts and the second light shielding parts are alternately disposed only in the second direction.

9

claim 6 the louver film has a thickness of 2.0 mm or more and 4.0 mm or less, and an arrangement pitch of the first light shielding parts and the second light shielding parts is 80 μm or less. . The image exposure device according to, wherein

10

claim 1 . The image exposure device according to, wherein the limiting member is disposed at a position separated by a certain distance from the photosensitive recording medium.

11

claim 10 . The image exposure device according to, wherein the certain distance is 0.67 mm or less.

12

an image display device that has a plurality of pixels and irradiates a photosensitive recording medium with light from the plurality of pixels, a support member that supports the photosensitive recording medium in a state in which an exposure surface of the photosensitive recording medium faces the image display device, a limiting member that is provided between the image display device and the support member and limits an angle of the light emitted from the image display device to the photosensitive recording medium, and a processor; and providing the image exposure device which includes: wherein in a case where a resolution (unit: ppi) of the image display device is D, the processor is configured to set a range for emphasizing the dark portion to a range according to a value M (unit: the number of pixels) obtained by a relational expression M=30/(2.54×1000/D). controlling, by the processor, the image display device to display a display image generated by emphasizing a dark portion among density differences of high-frequency components of an input image, . An image exposure method in an image exposure device, the method comprising:

13

an image display device that has a plurality of pixels and irradiates a photosensitive recording medium with light from the plurality of pixels; a support member that supports the photosensitive recording medium in a state in which an exposure surface of the photosensitive recording medium faces the image display device; a limiting member that is provided between the image display device and the support member and limits an angle of the light emitted from the image display device to the photosensitive recording medium; and wherein in a case where a resolution (unit: ppi) of the image display device is D, the processor is configured to set a range for emphasizing the dark portion to a range according to a value M (unit: the number of pixels) obtained by a relational expression M=30/(2.54×1000/D). controlling, by the processor, the image display device to display a display image generated by emphasizing a dark portion among density differences of high-frequency components of an input image, the processor, and the process includes: . A non-transitory computer-readable storage medium storing a program for causing a computer having a processor to execute a process of an image exposure in an image exposure device which includes:

Detailed Description

Complete technical specification and implementation details from the patent document.

This application is a continuation application of International Application No. PCT/JP2021/027405, filed Jul. 21, 2021, the disclosure of which is incorporated herein by reference in its entirety. Further, this application claims priority from Japanese Patent Application No. 2020-142092 filed on Aug. 25, 2020, the disclosure of which is incorporated herein by reference in its entirety.

The technology of the present disclosure relates to an image exposure device, an image exposure method, and a program.

An image exposure device that exposes a photosensitive recording medium (for example, an instant film) to light emitted from an image display device is known. A display image displayed on the image exposure device is recorded on the photosensitive recording medium. This image exposure device is used for an instant camera or the like.

Further, in order to suppress blurring of a recorded image recorded on a photosensitive recording medium, it is known to provide a limiting member between the image display device and the photosensitive recording medium to limit the angle of light emitted from the image display device to the photosensitive recording medium. The limiting member suppresses diffused light from the light emitted from the image display device to the photosensitive recording medium.

However, depending on the structure of the limiting member, the light emitted from the limiting member may be diffused. In this case, in the recorded image recorded on the photosensitive recording medium, the density difference in the edge portion (for example, the contour of the subject) becomes small, resulting in deterioration of visibility. That is, blurring occurs in the recorded image.

WO2019/187751A proposes emphasizing density differences of the high-frequency components of the display image in order to suppress the blurring of the recorded image caused by the diffusion of the light emitted from the limiting member.

In the technology described in WO2019/187751A, in a case of emphasizing the density differences of high-frequency components of a display image, the bright portion and the dark portion are emphasized with the same weight. In a case where the density differences of the high-frequency components of the display image are emphasized in this way, the effect of suppressing the blurring of the recorded image can be obtained as compared with the case where the limiting member is simply provided.

In the case of using the technology described in WO2019/187751A, the brightness and darkness of the recorded image are emphasized by increasing the degree of emphasis of the density differences of the high-frequency components. However, the applicant has confirmed that, in a case where the degree of emphasis is increased above a certain level, the emphasized bright portion of the display image sometimes cancels the effect of emphasizing the brightness and darkness of the recorded image. Therefore, in a case where the degree of emphasis is increased above a certain level, the sense of resolution of the recorded image may not be improved.

An object of the technology of the present disclosure is to provide an image exposure device, an image exposure method, and a program that enable improvement in the sense of resolution of a recorded image.

In order to achieve the above object, according to an aspect of the present disclosure, there is provided an image exposure device comprising: an image display device that has a plurality of pixels and irradiates a photosensitive recording medium with light from the plurality of pixels; a support member that supports the photosensitive recording medium in a state in which an exposure surface of the photosensitive recording medium faces the image display device; a limiting member that is provided between the image display device and the support member and limits an angle of the light emitted from the image display device to the photosensitive recording medium; and a processor, in which the processor controls the image display device to display a display image generated by emphasizing only a dark portion among density differences of high-frequency components of an input image.

It is preferable that the processor generates the display image by emphasizing a bright portion in addition to the dark portion among the density differences of the high-frequency components of the input image, and a degree of emphasis of the dark portion is higher than a degree of emphasis of the bright portion.

It is preferable that the processor emphasizes the density differences of the high-frequency components extracted from the input image by unsharp mask processing.

It is preferable that, in a case where a resolution (unit: ppi) of the image display device is D, the processor sets a range for emphasizing the dark portion to a range according to a value M (unit: the number of pixels) obtained by a relational expression M=30/(2.54×1000/D).

It is preferable that the processor sets a standard deviation of a Gaussian filter to the value M or less, and extracts the high-frequency component by performing unsharp mask processing using the Gaussian filter from the input image.

It is preferable that the limiting member is an optical member of a diffusion optical system.

It is preferable that the optical member is a louver film in which first light transmission parts that transmit light and first light shielding parts that block light are alternately disposed in a first direction on a surface parallel to an arrangement surface where the pixels of the image display device are arranged, and second light transmission parts that transmit light and second light shielding parts that block light are alternately disposed in a second direction on the surface, the second direction being not parallel to the first direction.

It is preferable that the optical member is a louver film in which first light transmission parts that transmit light and first light shielding parts that block light are alternately disposed in a first direction on a surface parallel to an arrangement surface where the pixels of the image display device are arranged, and second light transmission parts that transmit light and second light shielding parts that block light are alternately disposed in a second direction on the surface, the second direction being perpendicular to the first direction.

It is preferable that the louver film is formed by laminating a first layer in which the first light transmission parts and the first light shielding parts are alternately disposed only in the first direction, and a second layer in which the second light transmission parts and the second light shielding parts are alternately disposed only in the second direction.

It is preferable that the louver film has a thickness of 2.0 mm or more and 4.0 mm or less, and an arrangement pitch of the first light shielding parts and the second light shielding parts is 80 μm or less.

It is preferable that the limiting member is disposed at a position separated by a certain distance from the photosensitive recording medium.

It is preferable that the certain distance is 0.67 mm or less.

According to another aspect of the present disclosure, there is provided an image exposure method in an image exposure device including an image display device that has a plurality of pixels and irradiates a photosensitive recording medium with light from the plurality of pixels, a support member that supports the photosensitive recording medium in a state in which an exposure surface of the photosensitive recording medium faces the image display device, and a limiting member that is provided between the image display device and the support member and limits an angle of the light emitted from the image display device to the photosensitive recording medium, the image exposure method comprising: controlling the image display device to display a display image generated by emphasizing only a dark portion among density differences of high-frequency components of an input image.

According to another aspect of the present disclosure, there is provided a program for causing a computer to execute a process, the computer controlling an image exposure device including an image display device that has a plurality of pixels and irradiates a photosensitive recording medium with light from the plurality of pixels, a support member that supports the photosensitive recording medium in a state in which an exposure surface of the photosensitive recording medium faces the image display device, and a limiting member that is provided between the image display device and the support member and limits an angle of the light emitted from the image display device to the photosensitive recording medium, the process comprising: controlling the image display device to display a display image generated by emphasizing only a dark portion among density differences of high-frequency components of an input image.

According to the technology of the present disclosure, it is possible to provide an image exposure device, an image exposure method, and a program that enable improvement in the sense of resolution of a recorded image.

Hereinafter, an image exposure device of the present embodiment will be described with reference to the drawings.

1 FIG. 2 FIG. 3 FIG. First, a configuration of an image exposure device of a first embodiment will be described.is a schematic view of the image exposure device according to the first embodiment.is an exploded perspective view of the image exposure device according the first embodiment.is a cross-sectional view of the image exposure device according to the first embodiment.

1 FIG. 2 10 As shown in, an image exposure deviceis housed in a body caseof, for example, an instant camera (for example, Instax (registered trademark) (trade name: Cheki) manufactured by Fujifilm Corporation).

2 3 4 5 6 3 30 6 3 4 7 3 10 The image exposure devicecomprises an image display device, a support member, a limiting memberand a control unit. The image display devicehas a plurality of pixels. The control unitcauses the image display deviceto display an image based on the image data. The support membersupports a photosensitive recording mediumon which a recorded image corresponding to a display image displayed by the image display deviceis recorded. The image data is acquired, for example, by an imaging element (not shown) provided in the body case.

5 3 4 3 7 5 The limiting memberis provided between the image display deviceand the support member, and is an optical member for angle limiting that limits the angle of light emitted from the image display deviceto the photosensitive recording medium. The limiting memberis, for example, a louver film.

(Image Display Device)

3 3 The image display deviceis, for example, a liquid crystal display device (liquid crystal display (LCD)). Note that the image display deviceis not limited to a liquid crystal display device, and may be a display device such as an organic EL display device (organic light-emitting diode (OLED)), a cathode ray tube display device (cathode ray tube (CRT)), or a light emitting diode display device (light-emitting diode (LED)).

3 10 3 30 In a case where a liquid crystal display device is used as the image display device, a light source such as a backlight is provided inside the body case. In a case where an organic EL display device is used as the image display device, the LED elements forming the pixelsemit light by themselves, and thus no light source is required.

3 FIG. 2 FIG. 3 30 30 31 3 30 31 31 30 30 As shown in, the image display devicehas a plurality of pixelsfor displaying display images. The pixelis a minimum unit of color information forming an image display surfaceof the image display device. The plurality of pixelsare arranged two-dimensionally on the image display surface. That is, the image display surfaceis an arrangement surface on which the pixelsare arranged, and is parallel to an X direction and a Y direction shown in. The plurality of pixelsare arranged at a constant pitch in the X direction and the Y direction. Note that the X direction and the Y direction are orthogonal to each other. Moreover, in the following, the direction orthogonal to the X direction and the Y direction is called a Z direction.

30 7 30 By setting an arrangement pitch of the pixelsto 200 μm or less, the impression of the recorded image recorded on the photosensitive recording mediumas a natural image can be enhanced. Therefore, the arrangement pitch of the pixelsis preferably 150 μm or less, more preferably 125 μm or less, and even more preferably 85 μm or less.

3 30 30 In the present embodiment, as the image display device, for example, a liquid crystal display device with a resolution (pixel density) of 249 ppi (pixels per inch) is used. Since there are 249 pixelsper inch (2.54 cm) in a 249 ppi liquid crystal display device, the arrangement pitch of the pixelsis about 100 μm.

32 31 31 3 32 31 7 A glass windowfor protecting the image display surfaceis provided on the image display surfaceside of the image display device. The thickness of the glass windowis preferably thin in order to shorten the distance from the image display surfaceto the photosensitive recording medium.

(Support Member)

4 7 31 4 7 4 7 The support memberof the present embodiment supports the photosensitive recording mediumwhile facing the image display surface. The support membermay support the photosensitive recording mediumdirectly or indirectly. The structure of the support memberis not particularly limited as long as it can support the photosensitive recording medium.

4 7 4 42 31 3 41 3 4 43 7 In the present embodiment, the support memberis a case of a film pack accommodating a plurality of photosensitive recording mediainside. The support memberis a box-shaped case having a light-shielding property, and is provided with an exposure aperturethrough which light emitted from the image display surfaceof the image display devicepasses through an upper surfaceon the image display deviceside. Inside the support member, an accommodating portion, which is a space for accommodating the plurality of photosensitive recording media, is provided.

7 43 7 7 7 7 42 The plurality of photosensitive recording mediaare accommodated in the accommodating portionin a laminated state. A light shielding sheet (not shown) is provided between the laminated photosensitive recording media. Only the uppermost photosensitive recording mediumamong the plurality of laminated photosensitive recording mediais exposed by exposing an exposure surfaceA through the exposure aperture.

44 4 42 7 3 44 7 42 7 7 31 7 1 FIG. A pressing member(see) is provided on the surface of the support memberopposite to the exposure aperture. The photosensitive recording mediumis urged toward the image display deviceby the pressing member. Accordingly, the photosensitive recording mediumis pressed to abut against the periphery of the exposure aperture. As a result, the exposure surfaceA of the photosensitive recording mediumand the image display surfaceare brought close to each other, and thus an image with good image quality is recorded on the photosensitive recording medium.

4 As a material for the support member, a resin member for a recording material that is used for various recording materials such as a photographic photosensitive material, a magnetic recording material, or an optical recording material can be used. The resin member for the recording material refers to a container, a lid, and an accessory supplemented thereto which are used to contain, pack, coat, protect, transport, or store the recording material, and support the form of the recording material or various members that mount the recording material and exhibit a function.

4 45 7 43 43 7 45 11 7 7 1 7 1 FIG. Further, the support memberis provided with an ejection portfor ejecting the exposed photosensitive recording mediumfrom the inside of the accommodating portionto the outside of the accommodating portion. The exposed photosensitive recording mediumejected from the ejection portpasses through between spreading rollers(see), whereby a pod portion (not shown) provided in the photosensitive recording mediumbreaks. A development treatment liquid is encompassed in the pod portion, and the breakage of the pod portion causes the development treatment liquid to spread in the photosensitive recording medium. Afterto several minutes have passed, development treatment proceeds sufficiently. Accordingly, a recorded image is formed on the photosensitive recording medium.

11 10 10 12 7 11 10 The spreading rollersare provided inside the body case. The body caseis provided with an ejection portfor ejecting the photosensitive recording mediumthat has passed between the spreading rollersto the outside of the body case.

(Photosensitive Recording Medium)

7 3 7 7 The photosensitive recording mediumis not particularly limited as long as it is a photosensitive recording medium capable of forming a recorded image with light emitted from the image display device. For example, as the photosensitive recording medium, an instant photographic film used in an instant camera (for example, Instax (registered trademark) (trade name: Cheki) manufactured by Fujifilm Corporation.) can be used. This instant photographic film incorporates a photosensitive recording mediumand a light shielding sheet.

7 Examples of a photosensitive material used for the photosensitive recording mediuminclude photographic photosensitive materials such as a negative film, a reversal film, printing paper, and a mono-sheet or peel-apart type instant photographic film.

(Limiting Member)

5 2 30 5 5 4 5 5 FIGS.,A, andB 4 FIG. 5 FIG.A 5 FIG.B An example of the limiting memberaccording to the present embodiment will be described with reference to.is a schematic cross-sectional view of an example of the image exposure device, and illustrates a traveling direction of light emitted from the pixels.is a plan view showing a configuration of the limiting member.is a side view showing the configuration of the limiting member.

5 5 51 52 31 3 51 52 5 FIG.A 5 FIG.A In the present embodiment, the limiting memberis composed of a louver film that transmits only light incident at a specific incidence angle. As shown in, in the limiting member, light transmission partsthat transmit light and light shielding partsthat block light are alternately disposed in a first direction (corresponding to the X direction shown in) on a plane parallel to the image display surfaceof the image display device. The light transmission partsand the light shielding partsdisposed in the first direction are examples of first light transmission parts and first light shielding parts according to the technology of the present disclosure.

5 51 52 31 3 51 52 5 FIG.A In addition, in the limiting member, the light transmission partsand the light shielding partsare alternately disposed in a second direction (corresponding to the Y direction shown in) perpendicular to the first direction and on the surface parallel to the image display surfaceof the image display device. The light transmission partsand the light shielding partsdisposed in the second direction of the present embodiment are examples of second light transmission parts and second light shielding parts according to the technology of the present disclosure.

51 52 52 52 52 52 30 In this way, in the present embodiment, the light transmission partsare two-dimensionally disposed, and the light shielding partsare formed in a lattice form. In the present embodiment, an arrangement pitch of the light shielding partsin the X direction is equal to an arrangement pitch of the light shielding partsin the Y direction. An arrangement pitch in the X direction and the Y direction is called a pitch P. The pitch P of the light shielding partsis preferably 80 μm or less, and more preferably 65 μm or less. By setting the pitch P of the light shielding partswithin the above range, the obliquely emitted light among the light emitted from the pixelscan be effectively blocked.

51 52 For example, in a case where the pitch P is 60 μm, the width of the light transmission partis set to 45 μm, and the width of the light shielding partis set to 15 μm.

5 30 3 7 7 4 FIG. With configuring the limiting memberas described above, as shown in, the angle of light emitted from the pixelsof the image display deviceto the exposure surfaceA of the photosensitive recording mediumcan be limited.

4 FIG. 30 3 5 As shown in, the light emitted from the pixelsof the image display deviceis diffused light that propagates in all directions within a range of ±90° with respect to the Z direction. That is, the limiting memberis an optical member in the diffusion optical system.

30 5 32 5 51 7 5 52 52 3 7 7 Light emitted from the pixelsis incident on the limiting memberafter passing through the glass window. Of the light incident on the limiting member, the light that is substantially parallel to the Z direction passes through the light transmission partand is incident on the photosensitive recording medium. Further, of the light incident on the limiting member, the light traveling obliquely with respect to the Z direction is incident on the light shielding partand is absorbed by the light shielding part. By limiting the angle of the light emitted from the image display deviceto the photosensitive recording mediumin this way, the image quality of the recorded image recorded on the photosensitive recording mediumis improved.

51 51 The light transmission partis made of, for example, a glass material or a light transmitting member such as transparent silicone rubber. The light transmission partmay be hollow as long as it can transmit light.

52 52 The light shielding partis made of, for example, a light absorbing member that absorbs light. A colored resin material (for example, black silicone rubber) can be used as the light absorbing member. Moreover, a neutral density (ND) filter can be used as the light absorbing member. The ND filter means a filter having a neutral optical density, and is a filter that can evenly absorb light in a wavelength region used for exposure without giving an influence on the wavelength (absorbance of 50% or more to 99.999% or less or light transmittance of 0.001% or more to 50% or less). Note that the light shielding partcan also be made of a light reflecting member that reflects light.

1 5 1 5 1 5 FIG.B A thickness tof the limiting membershown inis preferably 1.5 mm or more and 4.0 mm or less, more preferably 2.0 mm or more and 4.0 mm or less, and even more preferably 2.5 mm or more and 4.0 mm or less. By increasing the thickness tof the limiting member, it is possible to block oblique light that forms a small angle with respect to the Z direction. Here, in a case where the thickness tis too large, the recorded image tends to blur, and thus it is preferable to set the upper limit as described above.

51 52 30 7 51 52 In addition, in a case where the angles formed by the arrangement direction of the light transmission partsand the light shielding partsand the X direction and the Y direction, which are the arrangement directions of the pixels, are close to each other, moire fringes may occur in recorded image recorded on the photosensitive recording medium. In order to suppress the occurrence of this moire fringe, it is preferable that the angles formed by the arrangement direction of the light transmission partsand the light shielding partsand the X direction and the Y direction are preferably in the range of 1 to 45 degrees, and more preferably in the range of 5 to 40 degrees.

5 7 7 53 5 7 7 4 FIG. Further, in the present embodiment, the limiting memberis disposed at a position separated by a certain distance L from the exposure surfaceA of the photosensitive recording medium(see). That is, a gapis provided between the limiting memberand the exposure surfaceA of the photosensitive recording medium. Converting to the thickness of a glass substrate with a refractive index of 1.5, the certain distance L is preferably 1.50 mm or less, more preferably 1.00 mm or less, and even more preferably 0.50 mm or less. Converting to the thickness in the atmosphere with a refractive index of 1.0, the certain distance L is preferably 1.00 mm or less, more preferably 0.67 mm or less, and even more preferably 0.33 mm or less.

(Protective Layer)

5 FIG.B 54 5 3 7 54 5 7 As shown in, a protective layermay be formed on each of the upper surface which is a surface of the limiting memberon the image display deviceside and the lower surface which is a surface of the photosensitive recording mediumside. The protective layerprevents the limiting memberfrom being damaged by repeated exposure of the photosensitive recording medium.

54 54 The protective layeris, for example, a plastic plate made of acrylic resin, polycarbonate, a vinyl chloride resin, or the like. The material of the protective layeris not particularly limited as long as it is a layer having translucency.

2 54 2 5 2 5 2 A thickness tof the protective layeris preferably 0.1 μm or more and 500 μm or less. By setting t≥0.1 μm, in addition to the effect of protecting the limiting member, the effect of making moire fringes inconspicuous is also obtained. Further, by setting t≥0.1 μm, the effect of making image defects caused by defects or structures of the limiting memberinconspicuous is obtained. Further, by setting t≤500 μm, blurring of the recorded image can be suppressed.

54 5 54 5 54 5 54 5 5 54 The thickness of the protective layeron the upper surface side of the limiting memberand the thickness of the protective layeron the lower surface side of the limiting membermay be different. Moreover, the protective layermay be provided only on the lower surface side of the limiting member. Furthermore, providing the protective layeron the limiting memberis not essential, and the limiting membermay not be provided with the protective layer.

30 3 5 3 7 51 5 Next, light emitted from the pixelsof the image display devicewill be described. As described above, the limiting memberlimits the angle of the light emitted from the image display deviceto the photosensitive recording medium, so that light substantially parallel to the Z direction passes through the light transmission partof the limiting member.

30 30 52 31 51 51 7 6 FIG. 7 FIG. However, since the pixelcan be considered as an aggregate of point light sources, the light emitted from point light sourcesA is diffused as shown in. Specifically, a light component having a certain angle according to a height H of the light shielding partfrom the image display surfaceand a width Q of the light transmission partpasses through the light transmission partand diffuses. Due to the diffused light component, as shown in, in the recorded image recorded on the photosensitive recording medium, a density difference of a high-frequency component (edge portion) E is reduced as compared with the display image. That is, in the recorded image, since the density difference is small, the edge portion tends to be difficult to be visually recognized. As a result, the recorded image is more likely to be blurred.

1 5 7 3 2 54 31 7 7 54 As a thickness tof the limiting memberincreases, the amount of light reaching the photosensitive recording mediumfrom the image display devicedecreases, so that there is a problem that a very long exposure time is required. Further, as a thickness tof the protective layerincreases, the distance L between the image display surfaceand the exposure surfaceA of the photosensitive recording mediumincreases, and the angle of light is not limited in the protective layer, and thus blurring of the recorded image is likely to occur.

5 6 3 7 7 Since it is difficult to completely suppress blurring of the recorded image due to the diffused light by the limiting memberin this way, the control unitperforms emphasis processing for increasing the density difference of the high-frequency component (edge portion) in the display image displayed on the image display device. By exposing the photosensitive recording mediumto light based on the display image in which the density difference of the high-frequency component is emphasized, blurring of the recorded image recorded on the photosensitive recording mediumis consequently suppressed.

8 FIG. 6 6 60 61 62 6 63 60 61 62 63 64 shows an example of the hardware configuration of the control unit. The control unitis composed of a computer including a central processing unit (CPU), a memoryas a temporary storage area, and a non-volatile storage unit. The control unitalso includes an input unit. The CPU, the memory, the storage unit, and the input unitare connected to each other via a bus.

62 65 62 60 65 62 65 61 65 60 6 65 60 The storage unitis realized by a hard disk drive (HDD), a solid state drive (SSD), a flash memory, or the like. An image processing programis stored in the storage unit. The CPUreads the image processing programfrom the storage unit, loads the read image processing programin the memory, and then executes the image processing program. The CPUfunctions as the control unitby executing processing based on the image processing program. The CPUis an example of a processor according to the technology of the present disclosure.

3 63 2 2 63 Image data corresponding to the display image displayed on the image display deviceis input to the input unit. Note that the image data may be acquired by an imaging element in the image exposure deviceor may be input from outside the image exposure device. An image represented by image data input to the input unitis hereinafter referred to as an input image.

6 3 6 3 The control unitcauses the image display deviceto display a display image obtained by performing the emphasis processing on the input image. Further, the control unitcontrols the image display deviceto display a display image in which the image quality of the input image is degraded by emphasizing the density difference of the high-frequency component of the input image.

9 FIG. 9 FIG. 6 60 65 shows an example of image processing executed by the control unit. The image processing shown inis executed by the CPUexecuting processing based on the image processing program.

10 6 6 In Step S, the control unitperforms high-frequency component extraction processing for extracting high-frequency components from the input image. In the present embodiment, the control unitperforms unsharp mask processing as an example of the high-frequency component extraction processing.

10 FIG. 6 Specifically, as shown in, the control unitfirst multiplies the input image by an unsharp mask (also called a kernel) to generate a blurred image (also called an unsharp image). The size of the unsharp mask is, for example, 5×5 pixels.

6 The control unituses, for example, a Gaussian filter represented by the following Expression (1) as the unsharp mask.

Here, x and y represent the coordinates of pixels. f(x,y) is the filter coefficient. σ is the standard deviation representing the degree of distribution. In the present embodiment, the standard deviation σ is represented by the number of pixels. Note that the standard deviation σ corresponds to the radius of blurring of the input image.

10 FIG. 6 Then, as shown in, the control unitsubtracts the blurred image from the input image (that is, obtains the difference) to generate a difference image representing the high-frequency components of the input image. The difference image has a large difference value at a portion corresponding to a portion (that is, edge portion) having a large gradation difference (that is, density difference) in the input image.

11 6 10 6 6 11 FIG. Next, in Step S, the control unitperforms weighting processing for weighting the high-frequency components extracted in Step S. As shown in, the control unitweights positive components greater than zero and negative components less than zero in the difference image, respectively. Specifically, the control unitmultiplies the positive component of the difference image by a weight Wp, and multiplies the negative component of the difference image by a weight Wn. In the present embodiment, Wp=0 and Wn>0. That is, in the present embodiment, the weighted difference image is an image obtained by extracting only the negative component from the original difference image and weighting the extracted negative component. The value of the weight Wn can be set optionally. The weight Wn is, for example, 0.7.

12 6 12 FIG. Next, in Step S, superimposition processing is performed to superimpose the high-frequency components on the input image. Specifically, as shown in, the control unitadds the weighted difference image to the input image to generate a display image on which high-frequency components are superimposed. Since the weighted difference image added to the display image has only negative components, the display image is an image in which only the dark portion among density differences of the high-frequency components of the input image is emphasized. The range to be emphasized in the emphasis processing corresponds to the standard deviation σ of the Gaussian filter.

3 In a case where the resolution of the image display deviceis D (unit: ppi), in the unsharp mask processing applied to the input image, it is preferable to set the range for emphasizing the dark portion to a range according to a value M (unit: the number of pixels) obtained by the following Expression (2). More specifically, the standard deviation σ of the Gaussian filter is set to a value M or less.

3 In a case where D=249, M≈2.94. Therefore, in a case where the image display devicehas a general resolution of 249 ppi, it is preferable to set the standard deviation σ to 2.94 or less. Note that in a case where the standard deviation σ of the Gaussian filter is set to a value M, a range wider than the value M is emphasized.

[Effect]

2 3 13 FIG. 13 FIG. Next, an effect of the image exposure deviceaccording to the present embodiment will be described.shows an example of a display image obtained by emphasizing a bright portion and a dark portion in emphasis processing for emphasizing density differences of high-frequency components of an input image as in the related art. In, two-dot dashed lines show an example of actual gradation change of a recorded image assumed in a case where a display image in the related art is displayed on the image display device.

6 FIG. 30 30 30 51 5 7 As shown in, since the pixelis an aggregate of the point light sourcesA and the light emitted from the point light sourcesA is diffused light, the light passing through the light transmission partof the limiting memberis diffused. This diffusion may extend to the outside (peripheral portion) of a pixel region to be irradiated on the photosensitive recording medium. In a case where the diffused light spreads to the peripheral portion, the peripheral portion of a pixel region with bright irradiation brightness becomes brighter than expected, and conversely, the pixel region becomes darker than expected. In this way, the periphery of the bright portion becomes brighter, and conversely, the bright portion becomes darker, thereby canceling the effect of emphasizing the brightness and darkness. As a result, the gradation change of the recorded image becomes gentle as a whole.

3 Therefore, even though the weight for emphasizing the density difference of the high-frequency components of the input image is increased, the effect of emphasizing the brightness and darkness is canceled. In this manner, in a case where a display image in the related art is displayed on the image display device, there is a likelihood that a phenomenon such as “the sense of resolution is not improved” may occur. Furthermore, in a case where the display image is a color image, there is a likelihood that a phenomenon such as “the color change in the peripheral portion becomes large” may occur.

3 On the other hand, in the present embodiment, the display image obtained by emphasizing only the dark portion in the process of emphasizing the density difference of the high-frequency components of the input image is displayed on the image display device. Therefore, the degree to which the effect of emphasizing the brightness and darkness is canceled is reduced, and the change in brightness and darkness in the peripheral portion is reduced. Thus, according to the present embodiment, the sense of resolution can be improved. Furthermore, in a case where the display image is a color image, it is possible to reduce the color change in the peripheral portion.

Furthermore, by reducing the standard deviation σ of the Gaussian filter corresponding to the range to be emphasized in the emphasis processing, it is possible to reduce the peripheral region affected by the emphasized pixels. Accordingly, it is possible to further improve the sense of resolution and further reduce the color change in the peripheral portion.

14 FIG. is a view showing an example of changes in a display image caused by changing the standard deviation σ. The smaller the standard deviation σ, the smaller the dark portion region that is emphasized by the emphasis processing, and the smaller the peripheral region that is affected by the emphasized pixels.

2 5 Next, a first modification example of the first embodiment will be described. In the first embodiment, the image exposure deviceuses the limiting memberhaving a single-layer configuration, but in the first modification example, a limiting member having a two-layer configuration is used.

15 15 FIGS.A toC 15 FIG.A 15 FIG.B 15 FIG.C 55 5 56 5 5 show examples of another configuration of the limiting member.is a plan view showing a configuration of a first layerof a limiting memberA according to the first modification example.is a plan view showing a configuration of a second layerof the limiting memberA according to the first modification example.is a side view showing the configuration of the limiting memberA according to the first modification example.

15 FIG.C 15 FIG.A 15 FIG.B 5 55 56 55 51 52 56 51 52 As shown in, the limiting memberA is formed by laminating the first layerand the second layer. As shown in, in the first layer, the light transmission partsand the light shielding partsare alternately disposed only in the first direction (corresponding to the X direction). As shown in, in the second layer, the light transmission partsand the light shielding partsare alternately disposed only in the second direction (corresponding to the Y direction) perpendicular to the first direction.

5 55 56 5 5 5 5 FIGS.A andB Thus, the limiting memberA has a two-layer configuration of the first layerand the second layer. The limiting memberA having a two-layer configuration has the same effect as the limiting member(see) composed of one layer.

52 51 52 The pitch P of the light shielding partsis preferably 80 μm or less and more preferably 65 μm or less, as in the first embodiment. Also, in order to suppress the occurrence of moire fringe, it is preferable that the angles formed by the arrangement direction of the light transmission partsand the light shielding partsand the X direction and the Y direction are preferably in the range of 1 to 45 degrees, and more preferably in the range of 5 to 40 degrees.

15 FIG.C 1 5 55 56 1 5 As shown in, a thickness tof the limiting memberA is the sum of the thickness of the first layerand the thickness of the second layer. As in the first embodiment, the thickness tof the limiting memberA is preferably 1.5 mm or more and 4.0 mm or less, more preferably 2.0 mm or more and 4.0 mm or less, and even more preferably 2.5 mm or more and 4.0 mm or less.

54 55 3 56 7 2 54 In addition, a protective layermay be formed on each of the upper surface which is a surface of the first layeron the image display deviceside and the lower surface which is a surface of the second layeron the photosensitive recording mediumside. A thickness tof the protective layeris preferably 0.1 μm or more and 500 μm or less as in the first embodiment.

Next, a second modification example of the first embodiment will be described. In the first embodiment, only the dark portion is emphasized in the process of emphasizing the density difference of the high-frequency components of the input image, but in the second modification example, the bright portion is emphasized in addition to the dark portion. Note that the degree of emphasis of the dark portion is made higher than the degree of emphasis of the bright portion.

6 6 11 FIG. 16 FIG. Specifically, in the first embodiment, in the weighting processing of the difference image, the control unitsets the weight Wp for the positive component of the difference image to 0, as shown in. In the present modification example, as shown in, the control unitsets the weight Wp for the positive component of the difference image to a value greater than 0 and smaller than the weight Wn for the negative component of the difference image (that is, 0<Wp<Wn) to weight the difference image.

17 FIG. In a case where the difference image weighted in this way is superimposed on the input image, as shown in, in the display image, among the density differences of the high-frequency components of the input image, the bright portion is emphasized, and the dark portion is emphasized with a higher degree of emphasis than the bright portion. In the present modification example, since the degree of emphasis of the dark portion is higher than the degree of emphasis of the bright portion, the same effect as in the first embodiment can be obtained.

[Effect Experiment of Image Exposure Device]

2 Next, an experimental result performed on the effect of the image exposure deviceaccording to the technology of the present disclosure will be shown.

(Experiment 1)

3 4 7 In this experiment, a general liquid crystal display device having a resolution of 249 ppi was used as the image display device. Moreover, the material of the support memberwas a metal plate. As the photosensitive recording medium, an Instax film was used.

5 55 51 52 52 56 51 52 52 15 15 FIGS.A toC In addition, in this experiment, the limiting memberA having a two-layer configuration (see) shown as the first modification example was used. In the first layer, the width of the light transmission partin the first direction was set to 45 μm, and the width of the light shielding partwas set to 15 μm. That is, the pitch P of the light shielding partsin the first direction was set to 60 μm. Further, in the second layer, the width of the light transmission partin the second direction was set to 45 μm, and the width of the light shielding partwas set to 15 μm. That is, the pitch P of the light shielding partsin the second direction was set to 60 μm.

55 56 1 5 2 54 51 52 5 7 7 4 FIG. Also, by setting the thicknesses of the first layerand the second layerto 1.25 mm, respectively, the thickness tof the limiting memberA was set to 2.5 mm. Also, the thickness tof the protective layerwas set to 0.2 μm. Also, in order to suppress the occurrence of moire fringes, the angle formed by the arrangement direction of the light transmission partsand the light shielding partsand the X direction and the Y direction was set to 8 degrees. Furthermore, the distance L (see) from the limiting memberA to the exposure surfaceA of the photosensitive recording mediumwas set to 0.5 mm.

In addition, as the input image, a general photographic image in which a landscape or a person was a subject was used.

2 3 7 In order to confirm the effect of the image exposure device, display images obtained by performing emphasis processing on the input image based on the following three emphasis conditions were displayed on the image display device, and the photosensitive recording mediumwas exposed.

First emphasis condition: No emphasis (Wp=0, Wn=0)

Second emphasis condition: Emphasis of bright portion and dark portion (Wp=0.5, Wn=0.5)

Third emphasis condition: Emphasis of only dark portion (Wp=0, Wn=0.5)

The first emphasis condition means that high-frequency components of the input image are not emphasized, that is, the input image is used as the display image.

The second emphasis condition means using a display image obtained by emphasizing the bright portion and the dark portion in emphasis processing for emphasizing density differences of high-frequency components of the input image as in the related art. The weight Wp corresponding to the degree of emphasis of the bright portion and the weight Wn corresponding to the degree of emphasis of the dark portion are the same.

The third emphasis condition means using a display image obtained by emphasizing only the dark portion in emphasis processing for emphasizing density differences of high-frequency components of the input image. In the third emphasis condition, the weight Wp corresponding to the degree of emphasis of the bright portion is set to 0.

In addition, in the second emphasis condition and emphasis processing using the third emphasis condition, unsharp mask processing was performed with the standard deviation σ of the Gaussian filter set to 2 pixels.

7 As the evaluation method, a sensory evaluation was used in which an expert in the evaluation of the sense of resolution of a photograph visually evaluated the sense of resolution of the recorded image recorded on the photosensitive recording medium. Specifically, an evaluation was made as to whether or not the recorded image obtained under the second emphasis condition and the third emphasis condition had reduced blurring, had good visibility, and was a desirable image compared to the recorded image obtained under the first emphasis condition.

Regarding the sense of resolution, an evaluation result was obtained that the third emphasis condition was the best compared to the first emphasis condition, and the second emphasis condition was the next best. In other words, it has been confirmed that, in a case where only the dark portion is emphasized in the process of emphasizing the density difference of the high-frequency components of the input image as in the technology of the present disclosure, the sense of resolution is improved.

(Experiment 2)

3 7 Next, as Experiment 2, an experiment was conducted on the dependence of the standard deviation σ corresponding to the range to be emphasized. In this experiment, display images obtained by performing emphasis processing on the input image based on the following two emphasis conditions were displayed on the image display device, and the photosensitive recording mediumwas exposed. Other conditions of Experiment 2 are the same as those of Experiment 1.

Fourth emphasis condition: Standard deviation σ of 3 pixels, emphasis of only dark portion (Wp=0, Wn=0.5)

Fifth emphasis condition: Standard deviation σ of 1 pixel, emphasis of only dark portion (Wp=0, Wn=0.5)

The fourth emphasis condition and the fifth emphasis condition differ from the third emphasis condition only in the value of the standard deviation σ. In the fourth emphasis condition, the standard deviation σ is 3 pixels. In the fifth emphasis condition, the standard deviation σ is 1 pixel.

In Experiment 2, the same method as in Experiment 1 was used to evaluate the recorded image. As a result, regarding the sense of resolution, an evaluation result was obtained that the recorded image obtained under the fifth emphasis condition had better sense of resolution than the recorded image obtained under the fourth emphasis condition. That is, it was confirmed that the sense of resolution was improved by reducing the standard deviation σ.

Next, the same evaluation as above was performed in a case where the weight Wn corresponding to the degree of emphasis of the dark portion and the standard deviation σ corresponding to the range to be emphasized were changed. Table 1 below shows the evaluation results. Note that the sense of resolution was determined according to three stages of A to C. “A” represents that the sense of resolution is the best. “C” represents that the sense of resolution is the worst.

TABLE 1 σ (Number of pixels) 1 2 3 Wn 0.6 A B C 0.7 A B C 0.8 A B C

As shown in Table 1, it was confirmed that the sense of resolution was improved by reducing the standard deviation σ regardless of the value of the weight Wn.

6 In the first embodiment and each modification example, the example in which the unsharp mask processing is performed as the emphasis processing performed by the control unithas been described, but the present disclosure is not limited to the unsharp mask processing, and for example, convolution processing or the like may be applied.

3 51 52 51 52 Further, the configuration of the limiting member is not limited to the configuration shown in the first embodiment and the first modification example, and any member capable of limiting the angle of light emitted from the image display devicemay be used. For example, in the first embodiment and the first modification example, in the first direction and the second direction in which the light transmission partsand the light shielding partsare arranged, the second direction is perpendicular to the first direction, but the second direction may not be parallel to the first direction. Also, the light transmission partsand the light shielding partsmay be disposed aperiodically. For example, a randomly perforated capillary plate or the like can be used as the limiting member.

3 3 6 3 65 6 3 31 Further, although the image display deviceis a display such as a liquid crystal display device in the first embodiment and each modification example, it is also possible to apply a mobile terminal such as a smartphone or a tablet terminal as the image display device. In this case, the control unitis built in the image display device. For example, a CPU of a smartphone or the like executes the image processing programto function as the control unitand perform image processing. The image display devicereceives image data on which image processing has been performed from the smartphone, and causes the image display surfaceto display a display image corresponding to the image data.

6 In the above embodiment, the following various processors can be used as the hardware structure of the control unit. The various processors described above include a CPU that is a general-purpose processor that functions by executing software (program) and a processor such as a field-programmable gate array (FPGA) whose circuit configuration can be changed after manufacturing. FPGA includes a programmable logic device (PLD), a dedicated electrical circuit that is a processor having a circuit configuration designed exclusively for executing specific processing such as an application specific integrated circuit (ASIC), or the like. Image processing may be executed by one of the various processors or may be executed by a combination of two or more processors of the same type or different types (for example, a combination of a plurality of FPGAs or a combination of a CPU and an FPGA). Furthermore, a hardware structure of the various processors is, more specifically, an electrical circuit in which circuit elements such as semiconductor elements are combined.

65 62 65 65 In each of the above-described embodiments, the image processing programis described as being stored (installed) in the storage unitin advance; however, the present disclosure is not limited thereto. The image processing programmay be provided in a form recorded in a non-transitory recording medium such as a compact disk read only memory (CD-ROM), a digital versatile disk read only memory (DVD-ROM), or a universal serial bus (USB) memory. In addition, the image processing programmay be downloaded from an external device via a network.

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Patent Metadata

Filing Date

February 6, 2023

Publication Date

August 4, 2026

Inventors

Hirotoshi Yoshizawa
Shinichiro Sonoda

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Cite as: Patentable. “Image exposure device, image exposure method, and program” (US-12699312-B2). https://patentable.app/patents/US-12699312-B2

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